Not applicable.
The present invention relates generally to a weight training device, and more particularly to an innovative structural design of a weight training sled with enhanced load effect.
The weight training sled referred to in the present invention is an inventive weight training apparatus developed in the recent years. It mainly includes a slide board that loads a weight. A particular example of the loading weight is weight plates. When the user pushes or pulls the slide board, the friction between the slide board and the ground will generate a resistance so as to realize the purpose of weight training. The training intensity can be adjusted by altering the quantity of additional weight. When pushing or pulling the slide board, the slide board and the ground will respectively have frictional wear. Therefore, weight training sleds are unsuitable for indoor use.
In view of the aforementioned problem of the weight training sled, the Industries have developed a weight training sled with wheels. The slide board is additionally configured with four wheels. The movement of the wheels of the slide board can solve the problem of frictional wear of the slide board and the ground, and is therefore suitable for indoor use. The wheels of the aforementioned weight training sled is further configured with a damping structure. When the wheels roll on the ground, the damping structure provides a damping effect, acting as another source of resistance in addition to the weight plates loaded on the slide board. The holding bars is usually erected on the slide board for the user to grip with both hands so as to apply a force to push or pull the weight training sled.
However, in actual application experiences, it is discovered that such prior-art weight training sled still has the following problems. For example, the position of the loading weight in the prior-art weight training sled is usually limited on the slide plate, and more specifically, one or two bars are erected on the slide plate for weight plates to sleeve in and stack. For this reason, the center of gravity of the loading weight on the prior-art weight training sled cannot be changed. However, when the user pushes the weight training sled, different centers of gravity of the loading weight can also generate different feelings and can train muscles at different parts. Therefore, the prior-art weight training sleds still lack the ability to adjust the position of the loading weight=s center of gravity. This limitation remains a significant technical challenge that requires further improvement and innovation in the relevant industry.
The primary objective of the present invention is to provide a weight training sled with enhanced load effect, aiming to solve the above technical problem and make an innovative breakthrough by developing a new structural design of a weight training sled that is more ideal and practical.
Based on the above objective, the present invention provides a weight training sled with enhanced load effect, comprising: a main frame, comprising a first end and a second end remote from each other; two first wheels, each in a rotatable state, disposed at either side of the first end; a second wheel, in a rotatable state, disposed at the second end, allowing the main frame to be displaced by utilizing the rolling of each of the first wheels and the second wheel; a damping structure, disposed on the main frame and connected to the second wheel to provide a damping effect to retard the rolling of the second wheel; an operating handle, erected at the first end of the main frame; an auxiliary push frame, erected at the second end of the main frame and including a stand portion and a handlebar portion coupled to the upper end of the stand portion; an enhanced weight load holder, disposed on the handlebar portion and including a stop portion spaced from the handlebar portion to form a handgrip clearance space; and a weight member, placed on the enhanced weight load holder and limited in position by the stop portion, thereby varying the center of gravity of the load in the weight training sled. Based on the above innovative structural design and technical features, the present invention is more advantageous than the prior art. The user can choose to load and place the weight member on the enhanced weight load holder, and limit it through the stop portion. In this way, the gravity center of the loading weight of the weight training sled can be changed to meet diversified needs, thus enhancing the function of the invention and providing more practical value.
Depicted in
The weight training sled comprising of a main frame 10, with a first end 11 and a second end 12 remote from each other. Two first wheels 40, each in a rotatable state, are disposed at either side of the first end 11. A second wheel 50, in a rotatable state, is disposed at the second end 12, allowing the main frame 10 to be displaced by utilizing the rolling of each of the first wheels 40 and the second wheel 50. A damping structure 51 is disposed on the main frame 10 and is connected to the second wheel 50 to provide a damping effect to retard the rolling of the second wheel 50. An operating handle 60 is erected at the first end 11 of the main frame 10. An auxiliary push frame 70 is erected at the second end 12 of the main frame 10 and including a stand portion 71 and a handlebar portion 72 coupled to the upper end of the stand portion 71. An enhanced weight load holder 80 is disposed on the handlebar portion 72 and including a stop portion 81 spaced from the handlebar portion 72 to form a handgrip clearance space H. A weight member 30 is placed on the enhanced weight load holder 80 and limited in position by the stop portion 81, thereby varying the center of gravity of the load in the weight training sled.
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Based on the above structural design and technical features, the actual application of the weight training sled with enhanced load effect is described below. Firstly, referring to
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Number | Name | Date | Kind |
---|---|---|---|
4477074 | Bushnell | Oct 1984 | A |
5810697 | Joiner | Sep 1998 | A |
6761650 | Dettmann | Jul 2004 | B1 |
7156782 | Krull | Jan 2007 | B1 |
D606611 | Rogers | Dec 2009 | S |
8617007 | Gilman | Dec 2013 | B2 |
D851186 | Kuka | Jun 2019 | S |
10398927 | Baumler | Sep 2019 | B2 |
10874897 | Eastham, Jr. | Dec 2020 | B1 |
D924342 | Bentley | Jul 2021 | S |
11179591 | Bazargan | Nov 2021 | B1 |
D941940 | McIntyre | Jan 2022 | S |
20170189733 | Bentley | Jul 2017 | A1 |
20200101346 | Chen | Apr 2020 | A1 |
20200238127 | Wehrell | Jul 2020 | A1 |